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Fe L-edge x-ray absorption spectroscopy of low-spin heme relative to non-heme Fe complexes: Delocalization of Fe d-electrons into the porphyrin ligand

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 129, Issue 1, Pages 113-125

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/ja065627h

Keywords

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Funding

  1. NCRR NIH HHS [P41 RR001209-180282, RR-01209, P41 RR001209] Funding Source: Medline
  2. NIDDK NIH HHS [R56 DK031038, R01 DK031038, DK-31038] Funding Source: Medline
  3. NIGMS NIH HHS [R01 GM040392-08, GM-69568, GM-40392, R01 GM040392, R01 GM040392-21, L30 GM069568] Funding Source: Medline

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Hemes (iron porphyrins) are involved in a range of functions in biology, including electron transfer, small-molecule binding and transport, and O-2 activation. The delocalization of the Fe d-electrons into the porphyrin ring and its effect on the redox chemistry and reactivity of these systems has been difficult to study by optical spectroscopies due to the dominant porphyrin pi ->pi* d transitions, which obscure the metal center. Recently, we have developed a methodology that allows for the interpretation of the multiplet structure of Fe L-edges in terms of differential orbital covalency (i.e., differences in mixing of the d-orbitals with ligand orbitals) using a valence bond configuration interaction (VBCI) model. Applied to low-spin heme systems, this methodology allows experimental determination of the delocalization of the Fe d-electrons into the porphyrin (P) ring in terms of both P -> Fe sigma and pi-donation and Fe -> P pi back-bonding. We find that d- donation to Fe(III) is much larger than pi back-bonding from Fe(II), indicating that a hole superexchange pathway dominates electron transfer. The implications of the results are also discussed in terms of the differences between heme and non-heme oxygen activation chemistry.

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